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Published on: December 28, 2017
High-Level Primary Pretomanid-Resistant with ddn In-Frame Deletion of Mycobacterium tuberculosis and Its Association
Shaojun Pei1,2, Wei Yang3,4, Xichao Ou5,6
1Department of Global Health, School of Public Health, Peking University, Beijing 100191, China.
Abstract:
Pretomanid (PMD) is a key antibiotic of the newest multidrug-resistant or rifampicin-resistant tuberculosis treatment regimen "BPaL", but knowledge of its resistance mutations is still limited, especially in China, as it was approved only in late 2024. We analyzed a collection of Mycobacterium tuberculosis (MTB) isolates from China including the whole-genome sequencing and drug susceptibility testing data and extended analysis to other 2165 isolates from lineage 4. We found in-frame deletion variants in the ddn genome sequence in the isolates collected in Xinjiang Uyghur Autonomous Region, China, with a high level of PMD resistance without pre-exposure to PMD belonging to sublineage 4.5. The extended analysis found that in-frame deletion variants occurred more frequently in sublineage 4.5. Some isolates contain multiple ancestral components after historical evolution, which may cause in-frame deletion variants to spread in some settings. Furthermore, molecular dynamics simulations and free energy calculations of the key mutants indicated that the impaired mutant structures result in unfavorable domination binding, which poses less probability for PMD activation for targeting other critical MTB targets and also leads to insufficient generation of NO (nitric oxide) to kill MTB. Currently, PMD resistance is mainly due to ddn gene mutations, especially frameshift mutations. However, our findings underscore the importance of surveillance for in-frame deletions, especially in regions with a high prevalence of sublineage 4.5, and the high level of PMD resistance conferred by deletions raises crucial concerns about the future effectiveness of the BPaL regimen.
Insights
New research identifies in-frame deletion variants in the *ddn* gene causing high-level pretomanid (PMD) resistance in tuberculosis. This finding is crucial for monitoring the effectiveness of the BPaL regimen, especially in China.
Area of Science:
- Microbiology
- Genetics
- Pharmacology
Background:
- Pretomanid (PMD) is vital for treating multidrug-resistant tuberculosis (MDR-TB) with the BPaL regimen.
- Limited data exists on PMD resistance mutations, particularly in China where it was recently approved.
Purpose of the Study:
- To investigate novel pretomanid resistance mechanisms in *Mycobacterium tuberculosis* (MTB) isolates from China.
- To assess the prevalence and impact of specific genetic variants on PMD resistance.
Main Methods:
- Whole-genome sequencing and drug susceptibility testing of MTB isolates from China and lineage 4.
- Analysis of *ddn* gene variants, including in-frame deletions.
- Molecular dynamics simulations and free energy calculations for key mutants.
Main Results:
- In-frame deletion variants in the *ddn* gene were identified in MTB isolates from Xinjiang, China, exhibiting high PMD resistance.
- These deletions were more frequent in sublineage 4.5 and associated with impaired PMD activation and reduced nitric oxide generation.
- Current PMD resistance is primarily linked to *ddn* gene mutations, especially frameshift types.
Conclusions:
- In-frame deletions in the *ddn* gene represent a significant mechanism of high-level PMD resistance in MTB.
- Surveillance for these deletions is critical, particularly in regions with high sublineage 4.5 prevalence, to ensure the continued efficacy of the BPaL regimen.
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